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TMP116 데이터시트(PDF) 12 Page - Texas Instruments

부품명 TMP116
상세설명  TMP116 High-Accuracy, Low-Power, Digital Temperature Sensor With SMBus- and I2C-Compatible Interface
PDF  46 Pages
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제조업체  TI2 [Texas Instruments]
홈페이지  https://www.ti.com
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TMP116 데이터시트(HTML) 12 Page - Texas Instruments

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Standby
15.5 ms
1 Conversion Cycle
15.5 ms
Start-Up
Start of
Conversion
Active Conversion
12
TMP116, TMP116N
SBOS740A – MAY 2017 – REVISED MAY 2019
www.ti.com
Product Folder Links: TMP116
Submit Documentation Feedback
Copyright © 2017–2019, Texas Instruments Incorporated
7.4 Device Functional Modes
7.4.1 Temperature Conversions
The TMP116 can be configured to operate in various conversion modes by using the MOD[1:0] bits. These
modes provide flexibility to operate the device in the most power efficient way required for the intended
application.
7.4.1.1 Conversion Cycle
When the device is operating in continuous conversion mode (see the Continuous Conversion Mode (CC)
section), every conversion cycle consists of an active conversion period followed by a standby period. During
active conversion the device typically consumes 135 µA, and during the low-power standby period the device
typically consumes 1.25 µA, as indicated in Table 1. Figure 19 shows a current consumption profile of a
conversion cycle. The duration of the active conversion period and standby period can be configured using the
CONV[2:0] and AVG[1:0] bits in the configuration register, thereby allowing the average current consumption of
the device to be optimized based on the application requirements. Changing the conversion cycle period also
affects the temperature result update rate because the temperature result register is updated at the end of every
conversion or averaging cycle.
Figure 19. Conversion Cycle Timing Diagram
7.4.1.2 Averaging
Noise in the conversion result can be reduced by configuring the device to report the average of multiple
temperature conversions using the AVG[1:0] bits. When the TMP116 is configured to perform averaging, the
device executes the configured number of conversions while accumulating the results and reports the average of
all conversion results at the end of the process. As illustrated in the noise histograms of Figure 6 and Figure 7,
the temperature result output has a repeatability of approximately ±3 LSBs when there is no averaging and ±1
LSB when the device is configured to perform eight averages or higher. As illustrated in Figure 20, this
improvement in noise performance is achieved with the tradeoff of an increase in the active conversion time in a
conversion cycle, thereby increasing the average active current consumption. For example, a single active
conversion typically takes 15.5 ms so if the device is configured to report an average of eight conversions then
the active conversion time is 124 ms (15.5 ms × 8). Use Equation 1 to factor in this increase in active conversion
time to accurately calculate the average current consumption of the device. The average current consumption of
the device can be decreased by increasing the amount of time the device spends in standby period as compared
to active conversion. Under the factory EEPROM settings, the device is configured to report an average of eight
conversions with a conversion cycle time of 1 second.



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